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Circuit Quantum Electrodynamics: Coherent Coupling of a Single Photon to a Cooper Pair Box
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Under appropriate conditions, superconducting electronic circuits behave quantum mechanically, with properties that can be designed and controlled at will. We have realized an experiment in which a superconducting two-level system, playing the role of an artificial atom, is strongly coupled to a single photon stored in an on-chip cavity. We show that the atom-photon coupling in this circuit can be made strong enough for coherent effects to dominate over dissipation, even in a solid state environment. This new regime of matter light interaction in a circuit can be exploited for quantum information processing and quantum communication. It may also lead to new approaches for single photon generation and detection.
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Lifetime renormalization of driven weakly anharmonic superconducting qubits: II. The readout problem
Drive-activated number-nonconserving Josephson terms induce a correlated qubit-cavity relaxation channel that increases the qubit decay rate approximately linearly with the readout cavity photon number.
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